View clinical trials related to Myelodysplastic Syndrome.
Filter by:Patients included in the study with high risk acute myeloid leukemia or myelodysplastic syndrome as defined will receive an allogeneic transplantation conditioned by either myeloablative or reduced regimen. Following allogeneic transplantation, patients will receive a maintenance regimen combining chemotherapy with azacitidine (aza) and immunotherapy with donor lymphocyte infusion.
This randomized phase II/III trial studies how well azacitidine works with or without lenalidomide or vorinostat in treating patients with higher-risk myelodysplastic syndromes or chronic myelomonocytic leukemia. Drugs used in chemotherapy, such as azacitidine, work in different ways to stop the growth of cancer cells, either by killing the cells, stopping them from dividing, or by stopping them from spreading. Lenalidomide may stop the growth of cancer cells by stopping blood flow to the cancer. Vorinostat may stop the growth of cancer cells by blocking some of the enzymes needed for cell growth. It is not yet known whether azacitidine is more effective with or without lenalidomide or vorinostat in treating myelodysplastic syndromes or chronic myelomonocytic leukemia.
The purpose of this study is to evaluate the efficacy of siltuximab, demonstrated by a reduction in red blood cell (RBC), transfusions to treat the anemia of Myelodysplastic Syndrome (MDS).
RATIONALE: Conditioning with total body irradiation (TBI) and fludarabine, cyclophosphamide and anti-thymocyte globulin may induce the engraftment cross the immunologic barrier in the setting of HLA-haploidentical allogeneic hematopoietic cell transplantation. In addition, T-cell depletion may contribute to prevent developing severe acute graft versus host disease (GVHD) in haploidentical transplantation. PURPOSE: This phase I/II trial is to evaluate the safety and efficacy of TBI, fludarabine, cyclophosphamide and antithymocyte globulin with T-cell depleted graft from haploidentical donors in treating patients with acute leukemia and myelodysplastic syndrome.
The purpose of this study is to evaluate the multi-lineage hematopoietic chimerism for unrelated umbilical cord blood (UCB) grafts pooled from two to three cord blood units. Also to evaluate the toxicity, and antitumor responses of pooled unrelated UCB transplants.
Patients will be receiving a stem cell transplant as treatment for their disease. As part of the stem cell transplant, patients will be given very strong doses of chemotherapy, which will kill all their existing stem cells. A close relative of the patient will be identified, whose stem cells are not a perfect match for the patient's, but can be used. This type of transplant is called "allogeneic", meaning that the cells are from a donor. With this type of donor who is not a perfect match, there is typically an increased risk of developing GvHD, and a longer delay in the recovery of the immune system. GvHD is a serious and sometimes fatal side-effect of stem cell transplant. GvHD occurs when the new donor cells (graft) recognize that the body tissues of the patient (host) are different from those of the donor. In this study, investigators are trying to see whether they can make special T cells in the laboratory that can be given to the patient to help their immune system recover faster. As a safety measure, we want to "program" the T cells so that if, after they have been given to the patient, they start to cause GvHD, we can destroy them ("suicide gene"). Investigators will obtain T cells from a donor, culture them in the laboratory, and then introduce the "suicide gene" which makes the cells sensitive to a specific drug called AP1903. If the specially modified T cells begin to cause GvHD, the investigators can kill the cells by administering AP1903 to the patient. We have had encouraging results in a previous study regarding the effective elimination of T cells causing GvHD, while sparing a sufficient number of T cells to fight infection and potentially cancer. More specifically, T cells made to carry a gene called iCasp9 can be killed when they encounter the drug AP1903. To get the iCasp9 gene into T cells, we insert it using a virus called a retrovirus that has been made for this study. The AP1903 that will be used to "activate" the iCasp9 is an experimental drug that has been tested in a study in normal donors with no bad side-effects. We hope we can use this drug to kill the T cells. The major purpose of this study is to find a safe and effective dose of "iCasp9" T cells that can be given to patients who receive an allogeneic stem cell transplant. Another important purpose of this study is to find out whether these special T cells can help the patient's immune system recover faster after the transplant than they would have otherwise.
Phase II trial evaluating the safety & efficacy of Atorvastatin for prophylaxis of Acute Graft Versus Host Disease (GVHD) in patients with hematological malignances undergoing human leukocyte antigen (HLA)-Matched Related Donor Hematopoietic Stem Cell Transplant (HSCT).
Patients with Myelodysplastic Syndromes (MDS) often suffer from low platelet levels which may lead to bleeding complications. Treatment with cytotoxic agents can decrease the platelet levels further. Eltrombopag is a relatively new drug that increases the platelet level in the blood by working directly on the bone marrow. It is available for treatment of the disease Immunological Thrombocytopenic Purpura (ITP). In this study patients with MDS and low platelet levels that are treated with the cytotoxic agent Azacitidine will also receive Eltrombopag. The administration of Eltrombopag to MDS patients treated with Azacitidine may result in less dose reductions and less treatment delays for Azacitidine and may reduce the need for thrombocyte transfusions and lower the risk of bleeding complications. This is a phase I study, meaning that our major goal is to investigate the safety and tolerability for Eltrombopag in this patient group. It will also generate a basis for a phase II-III-study.
This study evaluated the safety and tolerability of using HSC835 in patients with hematological malignancies.
Assessment of efficacy of azacitidine to prevent a relapse